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Shifts in the eye-centered frame of reference may underlie saccades, visual perception, and eye-hand coordination

期刊

JOURNAL OF NEUROPHYSIOLOGY
卷 128, 期 4, 页码 1025-1039

出版社

AMER PHYSIOLOGICAL SOC
DOI: 10.1152/jn.00531.2021

关键词

action-perception coupling; equilibrium-point hypothesis; referent control; saccade; visual receptive fields

资金

  1. Natural Sciences and Engineering Research Council of Canada (NSERC)
  2. [121473-2012RGPIN]

向作者/读者索取更多资源

Conventional computational theories are limited in their understanding of action and perception control. An alternative scheme proposes that the nervous system controls physical and neurophysiological parameters to determine the spatial frames of reference for action and perception. This control scheme explains visual receptive field remapping during eye movements and coordination of arm movements.
Conventional, computational theories limit the understanding of how action and perception are controlled. In an alternative scheme, the nervous system controls the values of physical and neurophysiological parameters that predetermine the choice of the spatial frames of reference (FRs) for action and perception. For example, all possible eye positions, Q, can be considered as comprising a spatial FR in which extraocular muscles (EOMs) stabilize gaze directions. The origin or referent point of this FR is a specific, threshold eye position, R, at which EOMs can be quiescent but activated depending on the difference between Q and R. Starting before eye motion, shifts in R cause displacement of the FR and resetting of the stable equilibrium position to which the eyes are forced to move. Rather than corollary discharge, the depiction of visual images integrated across the entire retina in the shifted spatial FR is re-sponsible for remapping visual receptive fields and visual constancy. These suggestions are illustrated in computer models of sac-cades in the referent control framework in humans and monkeys. The existence of three types of visual RF remapping during saccades is suggested. Properly scaled, shifts in the R underlying a saccade are transmitted to motoneurons of arm muscles to guide reach-to-grasp motion in the same, eye-centered FR. Some predictions of the proposed control scheme have been verified and new tests are suggested. The scheme is applicable to several eye-hand coordination deficits including micrography in Parkinson's disease and explains why vision helps deafferented subjects diminish movement deficits.

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